ZFP92, a KRAB domain zinc finger protein enriched in pancreatic islets, binds to B1/Alu SINE transposable elements and regulates retroelements and genes
暂无分享,去创建一个
Anna B. Osipovich | M. Magnuson | Shristi Shrestha | J. Cartailler | A. Osipovich | L. T. Trinh | Karrie D. Dudek | Lily H. Kim | Jean-Philippe Cartailler
[1] S. Katayama,et al. B1 SINE-binding ZFP266 impedes mouse iPSC generation through suppression of chromatin opening mediated by reprogramming factors , 2023, Nature Communications.
[2] Hamed Haseli Mashhadi,et al. The International Mouse Phenotyping Consortium: comprehensive knockout phenotyping underpinning the study of human disease , 2022, Nucleic Acids Res..
[3] Anna B. Osipovich,et al. Differential regulation of alternate promoter regions in Sox17 during endodermal and vascular endothelial development , 2022, iScience.
[4] D. Trono,et al. KRAB zinc finger protein ZNF676 controls the transcriptional influence of LTR12-related endogenous retrovirus sequences , 2022, Mobile DNA.
[5] Dustin E. Schones,et al. Sequence features of retrotransposons allow for epigenetic variability , 2021, bioRxiv.
[6] E. Eichler,et al. A cis-acting structural variation at the ZNF558 locus controls a gene regulatory network in human brain development. , 2021, Cell stem cell.
[7] S. Akbarian,et al. Neuron-specific chromosomal megadomain organization is adaptive to recent retrotransposon expansions , 2021, Nature Communications.
[8] M. Branco,et al. Locus-specific chromatin profiling of evolutionarily young transposable elements , 2021, bioRxiv.
[9] A. Hutchins,et al. Transposable element sequence fragments incorporated into coding and noncoding transcripts modulate the transcriptome of human pluripotent stem cells , 2021, Nucleic acids research.
[10] S. Thuret,et al. Modulation of the Hypothalamic Nutrient Sensing Pathways by Sex and Early-Life Stress , 2021, Frontiers in Neuroscience.
[11] R. Andersson,et al. Endogenous retroviruses co-opted as divergently transcribed regulatory elements shape the regulatory landscape of embryonic stem cells , 2021, bioRxiv.
[12] A. Ferguson-Smith,et al. A spontaneous genetically induced epiallele at a retrotransposon shapes host genome function , 2021, eLife.
[13] Anna B. Osipovich,et al. A developmental lineage-based gene co-expression network for mouse pancreatic β-cells reveals a role for Zfp800 in pancreas development , 2021, Development.
[14] Wei Xie,et al. Homotypic clustering of L1 and B1/Alu repeats compartmentalizes the 3D genome , 2021, Cell Research.
[15] Thomas M. Keane,et al. Twelve years of SAMtools and BCFtools , 2020, GigaScience.
[16] D. Trono,et al. Transposable elements and their KZFP controllers are drivers of transcriptional innovation in the developing human brain , 2020, bioRxiv.
[17] A. Ferguson-Smith,et al. A spontaneous genetically induced epiallele at a retrotransposon shapes host genome function , 2020, bioRxiv.
[18] C. Prahalathan,et al. β-Cell specific transcription factors in the context of diabetes mellitus and β-cell regeneration , 2020, Mechanisms of Development.
[19] Michael J. Purcaro,et al. Expanded encyclopaedias of DNA elements in the human and mouse genomes , 2020, Nature.
[20] Michael Weber,et al. Genome-wide analysis in the mouse embryo reveals the importance of DNA methylation for transcription integrity , 2020, Nature Communications.
[21] D. Trono,et al. KRAB-zinc finger protein gene expansion in response to active retrotransposons in the murine lineage , 2020, eLife.
[22] M. Pavlicev,et al. Endogenous retroviruses drive species-specific germline transcriptomes in mammals , 2020, Nature Structural & Molecular Biology.
[23] Philip A. Ewels,et al. The nf-core framework for community-curated bioinformatics pipelines , 2020, Nature Biotechnology.
[24] J. Wysocka,et al. Transposable elements as a potent source of diverse cis-regulatory sequences in mammalian genomes , 2020, Philosophical Transactions of the Royal Society B.
[25] F. Jacobs,et al. Widespread correlation of KRAB zinc finger protein binding with brain-developmental gene expression patterns , 2020, Philosophical Transactions of the Royal Society B.
[26] T. Macfarlan,et al. The Arms Race Between KRAB-Zinc Finger Proteins and Endogenous Retroelements and Its Impact on Mammals. , 2019, Annual review of genetics.
[27] E. Barillot,et al. Tools and best practices for retrotransposon analysis using high-throughput sequencing data , 2019, Mobile DNA.
[28] B. Deplancke,et al. Primate-restricted KRAB zinc finger proteins and target retrotransposons control gene expression in human neurons , 2019, Science Advances.
[29] Z. Weng,et al. Genome-wide analysis of polymerase III–transcribed Alu elements suggests cell-type–specific enhancer function , 2019, Genome research.
[30] A. Ferguson-Smith,et al. ZFP57 regulation of transposable elements and gene expression within and beyond imprinted domains , 2019, Epigenetics & Chromatin.
[31] Petra C. Schwalie,et al. ZFP30 promotes adipogenesis through the KAP1-mediated activation of a retrotransposon-derived Pparg2 enhancer , 2019, Nature Communications.
[32] Y. Loh,et al. Transposable elements are regulated by context-specific patterns of chromatin marks in mouse embryonic stem cells , 2019, Nature Communications.
[33] T. Kino,et al. C2H2-Type Zinc Finger Proteins: Evolutionarily Old and New Partners of the Nuclear Hormone Receptors , 2018, Nuclear receptor signaling.
[34] Principal Investigators,et al. Single-cell transcriptomics of 20 mouse organs creates a Tabula Muris , 2018 .
[35] James T. Webber,et al. Single-cell transcriptomics of 20 mouse organs creates a Tabula Muris , 2018, Nature.
[36] E. L. Denchi,et al. Caught with One's Zinc Fingers in the Genome Integrity Cookie Jar. , 2018, Trends in genetics : TIG.
[37] T. Hughes,et al. The Human Transcription Factors , 2018, Cell.
[38] Akihiro Kuno,et al. MafB Is Critical for Glucagon Production and Secretion in Mouse Pancreatic α Cells In Vivo , 2018, Molecular and Cellular Biology.
[39] H. Sasaki,et al. Locus-specific hypomethylation of the mouse IAP retrotransposon is associated with transcription factor-binding sites , 2017, Mobile DNA.
[40] Yixuan Wang,et al. The Role of KRAB-ZFPs in Transposable Element Repression and Mammalian Evolution. , 2017, Trends in genetics : TIG.
[41] D. Trono,et al. KRAB zinc finger proteins , 2017, Development.
[42] P. Georgiev,et al. C2H2 Zinc Finger Proteins: The Largest but Poorly Explored Family of Higher Eukaryotic Transcription Factors , 2017, Acta naturae.
[43] D. Trono,et al. KRAB zinc-finger proteins contribute to the evolution of gene regulatory networks , 2017, Nature.
[44] Anna B. Osipovich,et al. Setd5 is essential for mammalian development and the co-transcriptional regulation of histone acetylation , 2016, Development.
[45] Andrew Emili,et al. Multiparameter functional diversity of human C2H2 zinc finger proteins , 2016, Genome research.
[46] C. Feschotte,et al. Regulatory activities of transposable elements: from conflicts to benefits , 2016, Nature Reviews Genetics.
[47] Helen M. Rowe,et al. Transposable Elements and Their KRAB-ZFP Controllers Regulate Gene Expression in Adult Tissues. , 2016, Developmental cell.
[48] Robert D. Finn,et al. The Dfam database of repetitive DNA families , 2015, Nucleic Acids Res..
[49] Ying Jin,et al. TEtranscripts: a package for including transposable elements in differential expression analysis of RNA-seq datasets , 2015, Bioinform..
[50] D. Trono,et al. The developmental control of transposable elements and the evolution of higher species. , 2015, Annual review of cell and developmental biology.
[51] William Stafford Noble,et al. The MEME Suite , 2015, Nucleic Acids Res..
[52] Mihai Albu,et al. C2H2 zinc finger proteins greatly expand the human regulatory lexicon , 2015, Nature Biotechnology.
[53] W. Huber,et al. Moderated estimation of fold change and dispersion for RNA-seq data with DESeq2 , 2014, Genome Biology.
[54] D. Ann,et al. KAPtain in charge of multiple missions: Emerging roles of KAP1. , 2014, World journal of biological chemistry.
[55] Mona Singh,et al. De novo prediction of DNA-binding specificities for Cys2His2 zinc finger proteins , 2013, Nucleic acids research.
[56] James H. Crichton,et al. Defending the genome from the enemy within: mechanisms of retrotransposon suppression in the mouse germline , 2013, Cellular and Molecular Life Sciences.
[57] A. Lupo,et al. KRAB-Zinc Finger Proteins: A Repressor Family Displaying Multiple Biological Functions , 2013, Current genomics.
[58] J. Baker,et al. Endogenous retroviruses function as species-specific enhancer elements in the placenta , 2013, Nature Genetics.
[59] Y. Shinkai,et al. Is there a role for endogenous retroviruses to mediate long-term adaptive phenotypic response upon environmental inputs? , 2013, Philosophical Transactions of the Royal Society B: Biological Sciences.
[60] C. Stoeckert,et al. Dual Lineage‐Specific Expression of Sox17 During Mouse Embryogenesis , 2012, Stem cells.
[61] D. C. Hancks,et al. Active human retrotransposons: variation and disease. , 2012, Current opinion in genetics & development.
[62] Judith Reichmann,et al. Microarray Analysis of LTR Retrotransposon Silencing Identifies Hdac1 as a Regulator of Retrotransposon Expression in Mouse Embryonic Stem Cells , 2012, PLoS Comput. Biol..
[63] Steven L Salzberg,et al. Fast gapped-read alignment with Bowtie 2 , 2012, Nature Methods.
[64] M. Batzer,et al. Repetitive Elements May Comprise Over Two-Thirds of the Human Genome , 2011, PLoS genetics.
[65] James H. Thomas,et al. Coevolution of retroelements and tandem zinc finger genes. , 2011, Genome research.
[66] R. Stein,et al. MafA and MafB activity in pancreatic β cells , 2011, Trends in Endocrinology & Metabolism.
[67] F. C. Pan,et al. Pancreas organogenesis: From bud to plexus to gland , 2011, Developmental dynamics : an official publication of the American Association of Anatomists.
[68] Aaron Klug,et al. The discovery of zinc fingers and their development for practical applications in gene regulation and genome manipulation , 2010, Quarterly Reviews of Biophysics.
[69] R. Emerson,et al. Adaptive Evolution in Zinc Finger Transcription Factors , 2009, PLoS genetics.
[70] C. Kozak,et al. Endogenous retroviruses , 2008, Cellular and Molecular Life Sciences.
[71] Clifford A. Meyer,et al. Model-based Analysis of ChIP-Seq (MACS) , 2008, Genome Biology.
[72] J. Bennetzen,et al. A unified classification system for eukaryotic transposable elements , 2007, Nature Reviews Genetics.
[73] S. Wakil,et al. Continuous fat oxidation in acetyl–CoA carboxylase 2 knockout mice increases total energy expenditure, reduces fat mass, and improves insulin sensitivity , 2007, Proceedings of the National Academy of Sciences.
[74] Sunit K. Singh. Endogenous retroviruses: suspects in the disease world. , 2007, Future microbiology.
[75] I. Artner,et al. MafB is required for islet β cell maturation , 2007, Proceedings of the National Academy of Sciences.
[76] P. Brown,et al. Calpain 11 is unique to mouse spermatogenic cells , 2006, Molecular reproduction and development.
[77] I. Artner,et al. MafB: An Activator of the Glucagon Gene Expressed in Developing Islet α- and β-Cells , 2006 .
[78] H. Coon,et al. Sex-specific findings from a genome-wide linkage analysis of human fatness in non-Hispanic whites and African Americans: The HyperGEN Study , 2005, International Journal of Obesity.
[79] S. Chirala,et al. Glucose and fat metabolism in adipose tissue of acetyl-CoA carboxylase 2 knockout mice. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[80] Z. Yi,et al. A novel KRAB zinc-finger protein, ZNF480, expresses in human heart and activates transcriptional activities of AP-1 and SRE. , 2004, Biochemical and biophysical research communications.
[81] S. Wakil,et al. Acetyl-CoA carboxylase 2 mutant mice are protected against obesity and diabetes induced by high-fat/high-carbohydrate diets , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[82] Yoshiakira Kanai,et al. Depletion of definitive gut endoderm in Sox17-null mutant mice. , 2002, Development.
[83] T. Boehm,et al. Diverse mRNA expression patterns of the mouse calpain genes Capn5, Capn6 and Capn11 during development , 1999, Mechanisms of Development.
[84] E. Saggerson,et al. Malonyl-CoA and the regulation of fatty acid oxidation in soleus muscle. , 1998, The Biochemical journal.
[85] K. H. Kim,et al. Cloning of human acetyl-CoA carboxylase-beta and its unique features. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[86] B. Schwaller. Cytosolic Ca2+ Buffers Are Inherently Ca2+ Signal Modulators. , 2019, Cold Spring Harbor perspectives in biology.
[87] R. Weiss,et al. Human endogenous retroviruses: friend or foe? , 2016, APMIS : acta pathologica, microbiologica, et immunologica Scandinavica.
[88] D. Harlan,et al. The MAFB transcription factor impacts islet α-cell function in rodents and represents a unique signature of primate islet β-cells. , 2016, American journal of physiology. Endocrinology and metabolism.
[89] Marc A. Tuazon,et al. Intensity-dependent and sex-specific alterations in hepatic triglyceride metabolism in mice following acute exercise. , 2015, Journal of applied physiology.
[90] J. V. Moran,et al. The Influence of LINE-1 and SINE Retrotransposons on Mammalian Genomes , 2015, Microbiology spectrum.
[91] Thomas R. Gingeras,et al. STAR: ultrafast universal RNA-seq aligner , 2013, Bioinform..
[92] H. Lehrach,et al. The KRAB-containing zinc-finger transcriptional regulator ZBRK1 activates SCA2 gene transcription through direct interaction with its gene product, ataxin-2. , 2011, Human molecular genetics.
[93] I. Artner,et al. MafB: an activator of the glucagon gene expressed in developing islet alpha- and beta-cells. , 2006, Diabetes.
[94] Mouse Genome Sequencing Consortium. Initial sequencing and comparative analysis of the mouse genome , 2002, Nature.
[95] C. Pabo,et al. Design and selection of novel Cys2His2 zinc finger proteins. , 2001, Annual review of biochemistry.